The present invention is a method and system for preventing voltage spike feedback with switched inductive loads connected to isolated redundant power supplies. A voltage clamp circuit of the present invention may clamp the voltage spikes caused by inductive loads within a power supply system to a safe voltage level. When the common output voltage of the redundant power supplies becomes too large, the voltage clamp circuit of the present invention may clamp the common output voltage to a safe voltage level at or slightly above the higher voltage of the parallel connected power supplies.
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8. A system for preventing voltage spike feedback, comprising:
at least two power supplies;
an inductive load coupled to a common output of said at least two power supplies;
means for measuring a common output voltage of said at least two power supplies;
means for detecting if said common output voltage of said at least two power supplies exceeds a threshold voltage; and
means for clamping said common output voltage of said at least two power supplies to a voltage approximately equal to said threshold voltage when said common output voltage of said at least two power supplies exceeds said threshold voltage, wherein said threshold voltage is derived from a reference voltage and a highest voltage of said at least two power supplies.
1. A system for preventing voltage spike feedback, comprising:
at least two isolated power supplies;
a switching inductive load coupled to a common output of said at least two isolated power supplies;
an operational amplifier having a first and second inputs, said first input being coupled to said common output of said at least two isolated power supplies,
a reference voltage supply, said reference voltage supply being coupled to said second input of said operational amplifier, said reference voltage supply creating a threshold voltage in combination with a higher voltage of said at least two power supplies, wherein upon said inductive load creating a voltage spike on said common output of said at least two isolated power supplies, said operational amplifier detects whether a common output voltage of said at least two isolated power supplies exceeds said threshold voltage and said operational amplifier clamps said common output voltage to a voltage approximately equal to said threshold voltage.
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The present invention generally relates to the field of power supplies, and more particularly to a method and system for preventing voltage spike feedback of switched inductive loads connected to isolated redundant power supplies.
Conventional power supply designs intended for redundant applications typically include OR-diodes. An OR-diode is typically utilized in redundant power supply systems at the outputs of parallel connected power supplies to provide higher output power and prevent a dead power supply or a power supply with a low output voltage from drawing current from a power supply with a higher output voltage or vice versa. An OR-diode may refer to a plurality of diodes in which, for a positive output power supply, the cathodes of each diode are connected to a common output of a plurality of redundant power supplies and anodes of each diode are coupled to the individual outputs of the individual power supplies. For a negative output power supply, the anodes of each diode are connected to a common output of a plurality of redundant power supplies and cathodes of each diode are coupled to the individual outputs of the individual power supplies.
A problem associated with the use of OR-diodes arises when inductive loads, such as computer data storage disk drives and fans, are powered by the redundant power supplies. Inductive loads introduce positive voltage spikes on their DC input which reverse polarize the OR-diodes. The output capacitors, connected after the OR-diodes of the redundant power supplies, are typically too small to provide suppression of voltage spikes over the specified maximum voltage of the power supplies caused by inductive loads. As a result, the voltage spikes may cause damage to the electronic control circuits of the inductive loads. Consequently, a method and system for preventing voltage spike feedback of switched inductive loads connected to isolated redundant power supplies is necessary.
Accordingly, the present invention is directed to a method and system for preventing voltage spike feedback of switched inductive loads connected to isolated redundant power supplies. In an embodiment of the present invention, a voltage clamp circuit of the present invention may clamp the voltage spikes caused by inductive loads to a safe voltage threshold level. The threshold voltage level may be within or slightly above the specified regulation window of the power supplies, for example with a typical regulation window for power supplies at ±5%, the threshold voltage level may be within ±10% of the desired output voltage. When the output voltage of the redundant power supplies becomes too large, the voltage clamp circuit of the present invention may clamp the voltage spike level to the threshold voltage level at or above the higher voltage of the parallel connected power supplies.
It is to be understood that both the forgoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention as claimed. The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate an embodiment of the invention and together with the general description, serve to explain the principles of the invention.
The numerous advantages of the present invention may be better understood by those skilled in the art by reference to the accompanying figures in which:
Reference will now be made in detail to the presently preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings.
Referring to
Referring to
Referring generally to
Referring specifically to
Process 250 may begin by measuring the common output voltage of a plurality of power supplies 260. Redundant power supply systems typically include a plurality of power supplies coupled to a common output through an OR-diode, the OR-diode providing isolation for each power supply. Each power supply may provide an output voltage. The common output voltage of the plurality of output voltages may be measured.
Process 250 may include detection of the common output voltage of the plurality of power supplies exceeds a threshold voltage 270. In an embodiment of the invention, a threshold voltage may be set at a voltage level that is safe for devices and components within the power supply system at or just above the top of the specified voltage regulation window of the power supplies after the OR-diodes. For example, a 12 volt power supply may be rated at 5%. Thus, the output voltage of each power supply, including its incorporated voltage regulation, may maintain the output voltage of the power supply between 11.4 and 12.6 volts. The threshold voltage may be set at a level at or slightly above the specified voltage regulation window of the power supplies. Additionally, the threshold voltage may be adjusted according to the desired application in which the power supply system is utilized.
When the common output voltage of the redundant power supplies exceeds a threshold voltage level, the common output voltage of the redundant power supplies may be clamped to a voltage approximately equal to the threshold voltage 280. As an example, if a switching inductive load coupled to a redundant power supply introduces a voltage spike causing the common output voltage of the power supplies to rise above a threshold voltage level, then the common output voltage of the redundant power supply system may be clamped to a voltage level approximately equal to the threshold voltage level. This may prevent damage to the redundant power supply system and the electronic control circuits of the switching inductive load due to a high voltage spike introduced by the switching inductive load.
Referring to
Additional circuitry of the present invention may include diodes 335–340. The anode of each diode 335–340 may be coupled to the output of a power supply 310–315 respectively. The cathodes of the diodes 335–340 and resistor 345 are coupled to a reference voltage 350. Reference voltage may be selected to create a desirable threshold voltage as discussed with respect to
Turning to the operation of the power supply system 300 of
An advantageous aspect of the clamping circuitry of the present invention is the small dynamic resistance of the circuitry. Zener diodes and “tranzorb” transient suppressing elements are unable to attenuate voltage spikes caused by switching inductive loads due to their inherently high dynamic resistance. While
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It is believed that the method and system of the present invention and many of its attendant advantages will be understood by the forgoing description. It is also believed that it will be apparent that various changes may be made in the form, construction and arrangement of the components thereof without departing from the scope and spirit of the invention or without sacrificing all of its material advantages. The form herein before described being merely an explanatory embodiment thereof. It is the intention of the following claims to encompass and include such changes.
Zansky, Zoltan, Jacobsen, Bill
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Apr 07 2003 | ZANSKY, ZOLTAN | NETWORK APPLIANCE INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 013954 | /0849 | |
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